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Structures and dynamics of Drosophila Tpr inconsistent with a static, filamentous structure
Grazyna Zimowska1, Michael R Paddy
1Department of Anatomy and Cell Biology, University of Florida, Gainesville, Florida 32610-0235, USA. gjzimowska@mail.ifas.ufl.edu
Abstract:
Here we report immunofluorescence localizations of the Drosophila Tpr protein which are inconsistent with a filament-forming protein statically associated with nuclear pore complex-associated intranuclear filaments. Using tissues from throughout the Drosophila life cycle, we observe that Tpr is often localized to discontinuous, likely granular or particulate structures in the deep nuclear interior. These apparent granules have no obvious connectivity to pore complexes in the nuclear periphery, and are often localized on the surfaces of chromosomes and to the perinucleolar region. Most strikingly, after 1 h of heat shock, the great majority of the Tpr in the deep nuclear interior accumulates at a single heat shock puff, while Tpr in the nuclear periphery appears unchanged. This heat shock puff, 93D, is a known repository for many components of pre-mRNA metabolism during heat shock. Although we do not observe Tpr at sites of transcription under normal conditions, the 93D heat shock result leads us to favor a role for Tpr in mRNA metabolism, such as the transport of mRNA through the nuclear interior to nuclear pore complexes. Consistent with this, we observe networks of Tpr containing granules spanning between the nucleolus and the nuclear periphery which are also decorated by an anti-SR protein antibody. Since we also observe Drosophila Tpr in reticular or fibrous structures in other nuclei, such as salivary gland polytene nuclei, these results indicate that Tpr can exist in at least two structural forms, and suggest that Tpr may relocalize or even change structural forms in response to cellular needs.
Insights
Drosophila Tpr protein localizes to nuclear granules, not filaments. Upon heat shock, Tpr concentrates at a specific puff, suggesting a role in messenger RNA (mRNA) metabolism and transport.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The Drosophila Tpr protein's localization and function have been debated, with some models suggesting a static association with nuclear filaments.
- Previous studies proposed Tpr as a filament-forming protein linked to nuclear pore complexes.
Purpose of the Study:
- To investigate the precise localization and structural dynamics of the Drosophila Tpr protein within the nucleus.
- To determine the functional role of Tpr, particularly in response to cellular stress like heat shock.
Main Methods:
- Immunofluorescence microscopy was employed to visualize Tpr protein localization in various Drosophila tissues throughout its life cycle.
- Heat shock experiments were performed to observe Tpr dynamics under stress conditions.
- Co-localization studies with anti-SR protein antibodies were conducted.
Main Results:
- Tpr localizes to discontinuous, granular structures within the nuclear interior, often on chromosomes and near the nucleolus, not static filaments.
- Upon heat shock, Tpr accumulates at a specific heat shock puff (93D), a known site for pre-mRNA metabolism.
- Tpr-containing granules form networks between the nucleolus and nuclear periphery, co-localizing with SR proteins.
Conclusions:
- Drosophila Tpr protein is not a static filament-forming protein but exists in dynamic, granular forms.
- Tpr's heat shock-induced localization suggests a role in messenger RNA (mRNA) metabolism and transport.
- Tpr may exhibit structural plasticity, changing forms and relocalizing based on cellular requirements.